有机发光二极管
量子效率
光电子学
共发射极
材料科学
系统间交叉
二极管
荧光粉
亮度
兴奋剂
荧光
发光
阴极
光谱效率
共振(粒子物理)
电效率
发光二极管
电致发光
光学
作者
Yexuan Pu,Xinliang Cai,Chenglong Li,Baoyan Liang,Hai Bi,Yue Wang
标识
DOI:10.1038/s41377-026-02220-w
摘要
Abstract Multiple resonance thermally activated delayed fluorescence (MR-TADF) materials featuring narrowband emission and high luminescence efficiency hold great promise for ultra-high-definition displays. However, red MR emitter-based organic light-emitting diodes (OLEDs) commonly suffer from pronounced efficiency roll-off due to intrinsically slow reverse intersystem crossing (RISC), which severely hinders their practical application. Herein, we present efficient OLEDs based on a selenium-embedded red MR framework featuring fast RISC, which not only serves as a high-performance emitter but also functions as a sensitizer. The emitter (tFSeBN) shows red emission at 607 nm and achieves a record-high RISC rate of 7.5 × 10 5 s – 1 . The corresponding OLED delivers a maximum external quantum efficiency (EQE max ) of 34.7% and maintains high EQE values of 31.0% and 25.6% at luminance levels of 1000 and 10,000 cd m −2 , highlighting its ultra-low efficiency roll-off. Owing to its high tolerance to doping concentration and accelerated RISC, tFSeBN further serves as an efficient sensitizer in hyperfluorescent OLEDs, enabling pure-red emission with CIE coordinates of (0.70, 0.30), high EQE and suppressed efficiency roll-off. This work provides a viable pathway to address the long-standing efficiency roll-off issue in red MR-OLEDs, serving as an alternative to conventional noble-metal-sensitized architectures for the red OLED industry.
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